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移除书签Binary Tree Zigzag Level Order Traversal
描述
Given a binary tree, return the zigzag level order traversal of its nodes' values. (ie, from left to right, then right to left for the next level and alternate between).
For example:
Given binary tree {3,9,20,#,#,15,7},
3/ \9 20/ \15 7
return its zigzag level order traversal as:
[[3],[20,9],[15,7]]
分析
广度优先遍历,用一个bool记录是从左到右还是从右到左,每一层结束就翻转一下。
递归版
// Binary Tree Zigzag Level Order Traversal// 递归版,时间复杂度O(n),空间复杂度O(n)public class Solution { public List> zigzagLevelOrder(TreeNode root) { List> result = new ArrayList<>(); traverse(root, 1, result, true); return result; } private static void traverse(TreeNode root, int level, List> result, boolean left_to_right) { if (root == null) return; if (level > result.size()) result.add(new ArrayList<>()); if (left_to_right) result.get(level-1).add(root.val); else result.get(level-1).add(0, root.val); traverse(root.left, level+1, result, !left_to_right); traverse(root.right, level+1, result, !left_to_right); }}
迭代版
// Binary Tree Zigzag Level Order Traversal// 广度优先遍历,用一个bool记录是从左到右还是从右到左,每一层结束就翻转一下。// 迭代版,时间复杂度O(n),空间复杂度O(n)public class Solution { public List> zigzagLevelOrder(TreeNode root) { List> result = new ArrayList<>(); Queue current = new LinkedList<>(); Queue next = new LinkedList<>(); boolean left_to_right = true; if(root == null) { return result; } else { current.offer(root); } while (!current.isEmpty()) { ArrayList level = new ArrayList<>(); // elments in one level while (!current.isEmpty()) { TreeNode node = current.poll(); level.add(node.val); if (node.left != null) next.offer(node.left); if (node.right != null) next.offer(node.right); } if (!left_to_right) Collections.reverse(level); result.add(level); left_to_right = !left_to_right; // swap Queue tmp = current; current = next; next = tmp; } return result; }}
